Adaptive Probabilistic Planning for the Uncertain and Dynamic Orienteering Problem
Qiuchen Qian, Yanran Wang, David Boyle

TL;DR
This paper introduces ADAPT, an adaptive probabilistic planning method for the Uncertain and Dynamic Orienteering Problem, improving robustness and success rates in uncertain, real-world scenarios like UAV charging scheduling.
Contribution
The paper proposes a novel Bayesian adaptive approach, ADAPT, for solving the UDOP with unknown, time-varying parameters, enhancing robustness and efficiency in uncertain environments.
Findings
ADAPT achieves 100% Mission Success Rate in simulations.
ADAPT maintains solution quality and computation time comparable to existing methods.
ADAPT outperforms heuristic and frequentist approaches under challenging conditions.
Abstract
The Orienteering Problem (OP) is a well-studied routing problem that has been extended to incorporate uncertainties, reflecting stochastic or dynamic travel costs, prize-collection costs, and prizes. Existing approaches may, however, be inefficient in real-world applications due to insufficient modeling knowledge and initially unknowable parameters in online scenarios. Thus, we propose the Uncertain and Dynamic Orienteering Problem (UDOP), modeling travel costs as distributions with unknown and time-variant parameters. UDOP also associates uncertain travel costs with dynamic prizes and prize-collection costs for its objective and budget constraints. To address UDOP, we develop an ADaptive Approach for Probabilistic paThs - ADAPT, that iteratively performs 'execution' and 'online planning' based on an initial 'offline' solution. The execution phase updates system status and records…
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Taxonomy
TopicsAdvanced Multi-Objective Optimization Algorithms
MethodsEmirates Airlines Office in Dubai
